EP3186504A1 - Windturbine mit vertikaler achse - Google Patents
Windturbine mit vertikaler achseInfo
- Publication number
- EP3186504A1 EP3186504A1 EP15757241.3A EP15757241A EP3186504A1 EP 3186504 A1 EP3186504 A1 EP 3186504A1 EP 15757241 A EP15757241 A EP 15757241A EP 3186504 A1 EP3186504 A1 EP 3186504A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- wall
- blade
- shell
- blade according
- wind turbine
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
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Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03D—WIND MOTORS
- F03D3/00—Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor
- F03D3/06—Rotors
- F03D3/061—Rotors characterised by their aerodynamic shape, e.g. aerofoil profiles
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03D—WIND MOTORS
- F03D3/00—Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor
- F03D3/06—Rotors
- F03D3/062—Rotors characterised by their construction elements
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F05—INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
- F05B—INDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
- F05B2240/00—Components
- F05B2240/20—Rotors
- F05B2240/21—Rotors for wind turbines
- F05B2240/211—Rotors for wind turbines with vertical axis
- F05B2240/216—Rotors for wind turbines with vertical axis of the anemometer type
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/70—Wind energy
- Y02E10/74—Wind turbines with rotation axis perpendicular to the wind direction
Definitions
- the invention relates to the field of wind turbines, for example to convert the kinetic energy of the wind into mechanical energy, then possibly into electrical energy.
- Wind turbines are generally designed for windy areas, that is, areas where the average wind speed over a given period exceeds a certain threshold.
- Wind turbines are generally unsuitable for windy areas and / or areas with variable speed or wind speed.
- the invention aims to provide a wind turbine with improved efficiency for areas with little wind.
- the invention relates to a wind turbine blade, at least one of which comprises a wall and means of subdivision, the compartmentalization means delimiting collection compartments in an inner chamber of the wall, the compartmentalization means being spaced apart. radially from one to the other.
- the blade offers improved wind sensing, that is to say a maximum capture over a large part of the pa rcours of the blade.
- the blade thus captures the kinetic energy of the wind for very low wind speeds, at least from 3km / h.
- the subdivision means make it possible to operate the blade under more varied conditions than the wind turbines of the prior art, that is to say in ns areas in which the wind is weak or of changing speed, and of changing direction.
- the blade is preferably designed for rotation about a vertical axis and / or for a vertical axis wind turbine.
- the blade according to the invention can be mounted on top of a mast of low height, close to the ground. It can therefore be mounted at a height of 1.5 m or 2 m or 5m, or more. Such a short mast allows for example to preserve the landscape.
- the subdivision means are at least partially flat and / or vertical partitions.
- the subdivision means may be fixed on the wall, on a frame of the wall, on a support of the wall and / or on a reinforcing plate of the wall.
- the blade may comprise means to be mounted, for example on a hub, telescopically.
- the telescopic means may comprise an arm of the blade and means for fixing this arm on the hub.
- the fastening means may comprise or be pins.
- the wall comprises an upper half-shell and a lower half-shell, the surface of the upper half-shell being able to be greater than the surface of the lower half-shell.
- an angle between the upper half-shell and a horizontal plane of extent of the blade, measured in the section of the wall in a vertical section plane, is greater than or equal to an angle between the half-shell lower and the horizontal plane.
- the upper half-shell and the lower half-shell advantageously meet in a sharp edge and / or a joining edge having a radius of curvature. Such a conformation allows a very good penetration into the air when a blade turns its back to the wind (the compartments are in a wind capture situation).
- the upper and lower half-shells preferably form an angle of between 1 ° or 15 ° or 25 ° on the one hand and 45 ° on the other hand, or between 10 ° on the one hand and 35 ° on the other hand. Such an angle gives the wall a tapered shape, allowing very good penetration into the air.
- the wall has a triangular section in a plane parallel to a plane having a vertical axis Z of the wind turbine and / or perpendicular to an axis of radial extension of the blade.
- this blade is provided with at least one system, or means, speed control mounted on the respective wall.
- Such a speed control system makes it possible to increase the kinetic energy losses of the blade above or from a given speed threshold of the wind turbine and thus to prevent the deterioration of the wind turbine. at high speed.
- the speed control system can be mounted on an upper half-shell and / or on a lower half-shell that includes the wall.
- the speed control system advantageously comprises control means, for example a flap, admitting an expanded state in which it extends at an angle relative to the wall.
- control means for example a flap, admitting an expanded state in which it extends at an angle relative to the wall.
- the shutter has a closed state in which it is aligned with the wall and / or at least partially closes an opening formed through the wall.
- the flap can be held in the closed position by springs, one end of which is connected to the flap and another end of which undergoes a greater or lesser traction, for example by means of a weight, placed in the blade, and whose position will change according to the centrifugal force that it will undergo during a movement of the blade.
- the wall of the blade comprises, with respect to an axis of rotation, on the one hand a proximal portion, or a support portion, on the other hand a distal portion, each of these portions each forming a means for capturing the incident wind. .
- the distal portion has a greater height (respectively: or thickness or maximum amplitude of its opening section for the wind inlet) greater than the greatest height (respectively: or thickness or maximum amplitude of the section d opening for the entrance of the wind) of the proximal portion.
- the proximal portion may be of constant section and may comprise a support, for example an arm, connecting the distal portion in which are formed the means of subdivision to the hub of the wind turbine.
- the distal portion has a weight greater than that of the proximal portion. This can be achieved by a greater weight of the components used for the distal portion, or by using weighting elements in the latter. This results in greater inertia of the blade when suddenly due to gales. Such a conformation advantageously makes it possible to capture the kinetic energy of the incident wind at a considerable distance from the vertical axis of the wind turbine.
- a blade according to the invention may advantageously comprise at least one envelope, forming a balloon or pocket, intended to receive a gas and to be disposed in front of the collection compartments, in an interior space to the blade delimited in part by the wall.
- the wall of a blade according to the invention may advantageously comprise a portion having a non-zero curvature.
- the invention also relates to a wind turbine, comprising at least one blade, preferably several blades, mounted on a hub or shaft.
- each blade is mounted telescopically on the hub.
- the hub or shaft is intended to be installed vertically, the blades being rotatable about it in a horizontal plane.
- a wind turbine according to the invention or, more generally, a wind turbine whose blades can rotate, in a horizontal plane, about a vertical axis, can be surrounded by a peripheral protection barrier.
- This can be removable between a protective position, and a neutral position, in which it does not provide protection. It may for example include panels that can be lowered or lowered, depending on the strength of the wind.
- FIG. 1 is a section in plan view of a portion of a vertical axis wind turbine according to the invention
- FIG. 2 is an enlargement of a blade section of the wind turbine of FIG. 1,
- FIG. 3 is an elevational view of the blade of FIG. 2, facing its internal volume
- FIGS. 4 and 5 are two sectional views of a wall of the blade according to the references IV and V of FIG. 3,
- FIG. 6 is a schematic view from above showing several angular positions of a blade of the wind turbine of FIG. 1 with respect to a particular direction of the incident wind,
- FIG. 7 is a perspective view of a blade provided with an optional control system, here in the deployed state,
- FIG. 8 is a sectional view of a wall of a variant of the blade, in a view similar to the section of FIG. 4,
- FIGS. 9A-9D are various representations of a control system of a control flap of a wind turbine blade according to the invention.
- FIGS. 10-11 are sectional views of a wall of a blade according to the invention and illustrate other embodiments thereof.
- FIG. 12 is an elevational view, facing its internal volume, of a blade according to another embodiment of the invention
- FIG. 13 is a perspective view of a wind turbine according to one embodiment of the invention
- FIG. 14 is a view of a protection system of a wind turbine.
- the vertical axis wind turbine 10 comprises a rotor with three blades 11 and a hub, or shaft, 12.
- the hub 12 is centered on a vertical axis Z, transverse to the plane of FIG. 1.
- the three blades 11 are fixed on the hub 12.
- the wind turbine 10 is here designed with a symmetry of rotation at an angle of 120 °.
- the number of blades 11 is different from three, for example two or four. It can also be greater than 4 or 5.
- the hub 12 is for example mounted on an electric generator shaft, or on a compressor, not shown, the shaft being of general orientation along the Z axis.
- Each blade 11 comprises a wall 20 and an arm 21 forming a support for the wall 20.
- each blade 11 may comprise a reinforcing plate 23 and partitions 25.
- the plate 23 makes it possible to form the bottom of the compartments 26, to limit the volume of the chambers, it can also serve as a support for the walls and / or the frame.
- Each arm 21 comprises for example a hollow beam or a metal tube for example, but not limited to, stainless steel.
- a section of the arm 21 may have a shape of square, rectangle or other geometric shapes or not.
- Each arm 21 is here oriented, or extension, radial along an axis XI, X2 or X3 respectively, transverse or perpendicular to the Z axis.
- the arm 21 can comprise telescopic means allowing the extension or the radial retraction of the blades 11 and allowing the blades 11 to adopt at least one or the other of two radial lengths R1 and R2 (or any length between RI and R2) between the Z axis and the distal end 241 (see Figure 2).
- the diameter of the wind turbine 10 is then modifiable, for example depending on the environmental conditions (wind force, etc.).
- An attachment means 12a which is connected to the hub 12 (FIG. 1) or to the arm, can cooperate respectively with the arm 21 or with the hub, to hold the arm 21 against the hub 12.
- This attachment means 12a is for example a sleeve, connected to the hub, and which allows to wrap an end of the arm 21.
- the arm 21 and the attachment means 12a of the hub 12 are for example provided with orifices not shown here. The fixing of the arm 21 on the hub 12 can then be carried out by means of pins each inserted into at least one orifice of each of the hub 12 and the arm 21.
- the arm 21 forms a sleeve and envelopes the attachment means 12a itself.
- Other variants are still possible.
- the plate 23 is here fixed on the arm 21 and extends, in the embodiment represented here, in a vertical plane parallel to a plane comprising the Z axis. This orientation of the plate 23 is however not limiting.
- the wall 20 of a blade 11 may be in one block or in one part. Alternatively, it may be designed in at least two blocks or at least two parts, formed or manufactured, at least in part, separately and subsequently joined.
- the wall 20 may comprise an upper part 20a and a lower part 20b, also called upper half-shell 20a and lower half-shell 20b. These two parts may be formed as a single body or, alternatively, the half-shells 20a and 20b are formed or manufactured separately and then joined.
- the wall 20 is for example made of a composite material comprising a polyester resin matrix and a fiberglass reinforcement. This material offers good rigidity for low weight and low cost. Alternatively or cumulatively, the wall 20 may comprise other plastic or composite materials having good rigidity and low weight.
- the wall 20 and the arm 21, for example steel, preferably stainless, may be held by tubes such as the tubes 251, 252, 253 of Figure 2, whose ends are connected to the wall 20 and which may come in support against the arm when the blade undergoes the thrust of the wind (in one embodiment these tubes are not connected to the arm 21, only their ends are fixed to the wall 20).
- These tubes can be made of stainless steel or wood (preferably covered with a resin or a protective coating against moisture).
- the wall 20 may comprise a not shown frame, for example a metal, such as stainless steel, or rigid plastic, the frame being fixed on the arm 21 and / or on the plate 23, for example by welding .
- the wall, the arm and the holding or mounting means of these elements are assembled so that the blade is balanced and does not rock, neither forwards nor backwards.
- the distal portion of the blade may have a weight greater than the proximal portion. This allows greater inertia, and a regulation or a smoothing jolts that result from gales. For example, this can be achieved with an arm 21 which has a thicker section in the part farthest from the Z axis than in the nearest part thereof.
- the wall 20 is in two parts 20a and 20b, they have a respective edge 20al and 20bl and are joined at a common joint edge 24 ( Figures 3 and 7).
- the edges 20al and 20bl here belong to the same vertical plane A, parallel to a plane having the Z axis, in which they define a mouth 220 ( Figure 1) through which the wind will be introduced into the blade.
- the edges 20a1 and 20b1 have a different curvature and the mouth 220 has a periphery different from a flat periphery and / or the edges 20a1 and 20b1 are shaped differently than in a vertical plane.
- the edge 24 is a sharp edge in the embodiment shown in Figures 1 to 5.
- the section of the wall 20 in a vertical plane T transverse to the plane A is then in the form of a triangle whose sides belong to the parts 20a and 20b and in plan A and a top 240 of which belongs to edge 24.
- the joining edge 24 is rounded, that is to say that the section of the wall 20 in the plane T, the parts 20a and 20b meet in a rounded edge 24 (see Figure 8).
- the angle ⁇ formed between the parts 20a and 20b in a vertical plane parallel to a plane comprising the Z axis may be between 25 ° and 45 ° or between 30 ° and 35 ° or 40 °; it is chosen to ensure good penetration into the air.
- the angle ⁇ can admit different values along the blade, at different distances from the hub 12. These values can be included in the ranges indicated above.
- the angle ⁇ can for example adopt different values in the section planes IV and V (FIGS. 4 and 5), the planes IV and V being for example parallel to a plane in which the Z axis extends.
- the section planes IV and V are parallel to the plane T which is itself transverse to the plane A (see Figure 2).
- the angle ⁇ is not necessarily uniform along the blade.
- the angle ⁇ is the sum of an angle ⁇ between the upper part 20a and the horizontal plane E, that is to say transverse to the axis Z, and an angle ⁇ 2 between the lower part 20b and the plane E.
- the angle ⁇ may be greater than the angle ⁇ 2 of 0.1 ° to 1 ° or to several degrees.
- the portion 20a has an outer surface with an area greater than an outer surface of the portion 20b. This advantageously allows the blade 11 to be subjected, under the effect of the incident wind, to an upward vertical thrust, opposite to the weight of the blade 11, and to limit the friction on the friction zones of the wind turbine. 10 such as bearings (not shown).
- the angles ⁇ and ⁇ 2 are equal.
- the parts 20a and 20b jointly delimit an internal chamber 22 accommodating, in the embodiment shown, the arm 21, the plate 23, the partitions 25 and the connecting means between the wall 20 and the arm 21.
- this internal chamber can also accommodate one or more 245-249 balloons.
- the internal chamber 22 is opened by the mouth 220, opposite the edge 24.
- the partitions 25 are here arranged transversely or perpendicular to the plane A. In the embodiment shown, the partitions 25 are substantially vertical and flat, parallel to the axis of rotation Z.
- the partitions 25 extend in a direction transverse to or perpendicular to the axis XI of the blade 11.
- the partitions 25 may be shaped differently, for example comprise at least one flat portion. Alternatively again, the partitions 25 comprise at least one vertical portion.
- the partitions 25 comprise at least one portion disposed in a plane parallel to a plane comprising the Z axis.
- One or more partitions 25 may be arranged (s) with a non-zero angle relative to the vertical.
- One or more partitions 25 may not be flat or completely flat, for example it may have a rough surface.
- the partitions 25 are spaced radially from each other. In the embodiment shown, the partitions 25 are fixed to the plate 23, for example but not limited to welding or rivets.
- the partitions 25 are here three in number, but there may be more or fewer than three, for example two or four.
- the partitions 25 delimit with the wall 20 of the collection compartments 26.
- the compartments 26 are radially separated from each other.
- the partitions 25 extend from the plate 23 to the mouth 220 and therefore to the plane A.
- the extent of the partitions 25 is either smaller or greater.
- the partitions 25 can extend from the plate 23 without reaching the mouth 220 or the plane A, or extend over only a portion of the distance between the plate 23 and / or the arm 21, and the mouth 220.
- this range is greater, see the embodiment in broken lines of Figure 1.
- the wall 20 has two portions: a proximal portion 221, or support portion, and a distal portion 222, here both of triangular section (see Figures 2, 4 and 5).
- the distal portion 222 is disposed radially outside the proximal portion 221, from a plane C, substantially vertical and transverse to the plane A in the embodiment shown.
- the two portions 221 and 222 open on the mouth 220.
- the two portions 221 and 222 of the wall 20, incident and not only the distal portion 222 form wind sensing means.
- the portion 221 extends radially between the foot of the wall 20, hub side 12 or Z axis, and the plane C.
- the section of the portion 221 is here triangular, with a base, or height, of dimension Hi which can be constant over the entire radial extent of the portion 221.
- the proximal portion 221 has a greater height of constant dimension Hi.
- the section of the portion 222 is here triangular, with a base, or height, variable dimension H 2 .
- the dimension H 2 increases from a value equal to Hi in the plane C, to a maximum height H m ax and then narrows to the distal tip end 241 of the blade 11.
- the opening for the entry of the wind of the section or proximal portion has a maximum height, or maximum thickness, or maximum amplitude, greater than that of the distal section or portion.
- This structure allows effective capture of the incident wind.
- the area that offers the most wind catching volume is the area farthest from the hub 12, which is very effective.
- This structure allows the wind turbine 10 to start and operate in very low winds, from a few km / h, for example from 2 or 3 km / h.
- the mouth 220 of the wind inlet in the blade has, away from the axis of rotation, a first section with a height the era (this section may have a uniform height), and then a section that widens until reaching the height Hmax, then finally reducing, to reach the end 240.
- the dimensions Hi and H 2 are measured in the plane A in which the mouthpiece 220 is located.
- the dimensions Hi and H 2 are the greatest heights of the sections of the portions 221 and 222 along one or more planes parallel to a plane including the Z axis and or in planes perpendicular to the axis XI (or X2, X3).
- Hi and H 2 are the greatest heights of the sections of the portions 221 and 222 along one or more planes parallel to a plane comprising the Z axis and / or in planes perpendicular to the axis XI (or X2, X3).
- a vertical plane B, to which the vertical axis Z belongs, is here represented perpendicular to the plane of FIG.
- a direction D of the incident wind is defined from top to bottom in the plane of FIG. 6.
- the direction D is thus chosen here parallel to the plane B.
- An angular reference of 0 ° also called the angular zero, is selected in the plane B, below the Z axis, that is to say here at the bottom of Figure 6.
- the direction of rotation R of the blade 11 is here the clockwise or anti-trigonometric direction, according to the direction of the arrows of the angles a 1 , a 2 and 3 ⁇ 4 described hereinafter with reference to FIG. 6.
- angle ⁇ is between 0 and 90 °
- angle ⁇ 2 is between 90 ° and 180 °
- the angle ⁇ 3 ⁇ 4 is between 180 ° and 360 °, the latter being a confused position with the angular zero.
- the blade 11 When the blade 11 is in one of the angle positions a 1 or a 2 , that is to say when the angle between the angular zero and the plane A is between 0 ° and 180 ° in the clockwise direction, the blade 11 is in the catchment area.
- the blade 11 directly faces the incident wind through its mouth 220.
- the partitions 25 provide incident wind resistance, or use thereof, improved over a vertical axis wind turbine blade without such partitions.
- the partitions 25 make it possible to retain the incident wind in the compartments 26 in the collection zone, that is to say the whole time during which the chamber 22 faces the wind, and consequently to improve the catchment kinetic energy and its conversion into mechanical energy. The efficiency of the wind turbine 10 is therefore improved.
- a blade 11 provided with partitions 25 maximizes the air capture and thus the kinetic energy of the incident wind in its catchment area.
- the blade 11 When the blade 11 is in a position of angle ⁇ 3 ⁇ 4, that is to say when the angle between the angular zero and the plane A is between 180 ° and 360 ° in the clockwise direction, the blade 11 is in the penetration zone.
- the mouth 220 receives no incident wind.
- the incident wind meets the edge 24 before running along the portions 20a and 20b.
- the configuration of the edge 24, according to a sharp edge or a small radius of curvature as described above, and / or the angle ⁇ chosen between the parts 20a and 20b, is / are particularly favorable (s) to good penetration in the air over the entire penetration area, which minimizes the slowdown of the blade 11 when it is in the area of penetration.
- the structure of the blade 11 is particularly favorable to the capture of kinetic energy or respectively to penetration into the air.
- the blade 11 comprises a speed control system 30 making it possible to limit the speed of rotation of the wind turbine 10 beyond a predetermined threshold.
- This embodiment is particularly suitable in the case where there is no plate 23, as already described above, the walls or partitions 25 can then be extended to the wall 210, as shown in broken lines in Figure 1 .
- air exhaust means 32 here an opening, are formed through the portion 20a of the blade 11. These means allow to escape some of the air that is introduced into the boxes 26 they thus form a leak for this air, which reduces its effectiveness during its interaction with the blade and slows it down.
- Means, here a flap 33, can close or open this opening. These means 33 are mounted outside the portion 20a, opposite the opening 32.
- the number of openings 32 and / or control flaps 33 is not limiting.
- the flap 33 has a closed state in which it at least partially closes the opening 32, for example in which the outer surface 33a of the flap 33 is aligned with the portion 20a.
- the flap 33 furthermore has a deployed state in which it is arranged projecting, externally and at an angle with respect to the part 20a, for example in a position pivoted with respect to the closed state and lying between 1 ° and a position vertical. In its deployed state, the flap 33 is remote from the part 20a, so as to let air from one or boxes 26, and possibly to provide wind resistance in the penetration area.
- the tilt adjustment means are preferably purely mechanical.
- the flap 33 in its deployed state, the flap 33, or more precisely its surface 33a, is fixed relative to the portion 20a.
- the component can be maintained position closed by springs, one end of which is connected to the flap and another end undergoes a more or less significant traction by a weight, arranged in the blade, and whose position will change according to the centrifugal force that it will undergo during a displacement of the blade.
- FIGS. 9A-9D An exemplary embodiment of the flap control means 33 is illustrated in FIGS. 9A-9D.
- FIG. 9A these means are represented in the envelope formed by the wall 20.
- FIG. 9B these control means are represented in FIG. 9B, with the flap 33.
- FIG. 9D represents a sectional view of the envelope 20, each of the references different figures 9A - 9D the same element.
- These means comprise means 330 forming an inclined plane, on which a free mass 332 can move.
- the mass exerts traction on a wire 331 and, via a set of pulleys 333 a, 333b, on the end of the arms 339a, 339b which will actuate the opening or closing of the flap 33.
- end of each of these arms is also connected to a spring 337a, 337b.
- the position of the free mass 332 on the inclined plane will depend on the centrifugal force. Depending on the intensity of the latter, the displacement of the mass will cause a greater or lesser tension of the springs 337a, 337b, thereby opening, or close, the shutter 33 according to the speed of rotation.
- FIG. 9C schematically represents an embodiment of the free mass 332, comprising a central hub and end wheels, each disposed at one end of this hub.
- Such a control system 30 makes it possible to limit the speed of rotation of the wind turbine 10 once a desired speed has been reached. This advantageously makes it possible to limit the wear of the components of the wind turbine 10, for example friction zones such as the bearings.
- a control system for example of the type of the control system 30, is preferably provided on the upper part 20a of each of the blades 11.
- a similar or similar control system to the control system 30 is provided on the lower part 20b of at least one of the blades 11, preferably each of the blades 11.
- one or more pockets filled with, or adapted to be filled with, gas may be incorporated in the blade structure, as illustrated in FIG. sectional view of a blade according to the invention and on which we see a pocket or a balloon 245 disposed in front of the arm 21, between the latter and the inner face of the wall 20.
- a plate 230 which can be extension parallel to the axis XI and which is parallel to the plate 23 can be used to define the compartment in which the balloon 245 is contained.
- a balloon 245 is also shown in broken lines in FIG. 2, in the same space.
- balloon (s) 247, 249 can be provided on both sides of the arm 21, above and / or below it.
- the plate 23 (see also Figure 1) is disposed in front of the balloon (s) 247, 249 so that their presence does not interfere with the compartments 26 in their functions.
- the chosen gas for example air
- the lower half-shell 20a may have a curvature to promote the lift of the blade.
- the lower part of the wall 20 (or of the interior volume delimited by this wall) has a zone 20b 'concave (or recessed, with a radius of curvature on the outside).
- the concavity will be adapted to minimize the volume of the compartments 26, but a realization with one or more compartments 26 volume a little reduced because of the presence of such a concavity can be of great interest because of the latter.
- edges 20a1 and 20b1 defining, in the plane of the figure, a registering shape, partially, substantially or approximately on a circle, extended by a portion which tapers to the distal tip end 241 of the blade 11.
- edges 20al and 20bl defining, in the plane of the figure, an elongate shape, which may even include portions 20all and 20bll edges 20al and 20bl partly substantially parallel to each other. This shape is then extended by a portion which tapers to the distal tip end 241 of the blade 11.
- This structure is particularly suitable for the implementation of one or more pocket (s) or balloon (s) gas, as explained above.
- the blades 11 may be oriented opposite to their orientation described above, the blades 11 will then have a counterclockwise direction of rotation, opposite the direction of rotation of the blades 11 described with reference to the figure 6.
- FIG. 13 represents a perspective view of a wind turbine according to the invention, comprising 3 blades according to the invention. It clearly shows the internal structure of a blade 10.
- a wind turbine for example of the type according to the described invention described above, may be surrounded by a peripheral protection barrier, of circular shape (case of Figure 10) or square.
- This barrier can be movable between a high position, represented in dashed lines in FIG. 14, and in which it provides effective protection of all the blades of the wind turbine against gusts of excessive wind, and a low or neutral position. , shown in solid lines in Figure 10, in which no barrier hinders the action of the wind on the blades of the wind turbine.
- It can include a succession of panels 50i, 50 2 , each of them being actuated by corresponding means 51i, which will allow to straighten in the vertical position.
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- Engineering & Computer Science (AREA)
- Life Sciences & Earth Sciences (AREA)
- Sustainable Development (AREA)
- Sustainable Energy (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Wind Motors (AREA)
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
FR1458063A FR3025259B1 (fr) | 2014-08-28 | 2014-08-28 | Eolienne a axe vertical |
PCT/EP2015/069784 WO2016030523A1 (fr) | 2014-08-28 | 2015-08-28 | Eolienne a axe vertical |
Publications (2)
Publication Number | Publication Date |
---|---|
EP3186504A1 true EP3186504A1 (de) | 2017-07-05 |
EP3186504B1 EP3186504B1 (de) | 2018-12-12 |
Family
ID=51866166
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP15757241.3A Not-in-force EP3186504B1 (de) | 2014-08-28 | 2015-08-28 | Windturbine mit vertikaler achse |
Country Status (3)
Country | Link |
---|---|
EP (1) | EP3186504B1 (de) |
FR (1) | FR3025259B1 (de) |
WO (1) | WO2016030523A1 (de) |
Families Citing this family (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US10408190B2 (en) | 2016-10-07 | 2019-09-10 | Robert B. Deioma | Wind turbine with open back blade |
Family Cites Families (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3930750A (en) * | 1974-04-08 | 1976-01-06 | Schultz Wilderich C | Wind power plant |
DE10105864A1 (de) * | 2001-02-06 | 2002-08-14 | Eugen Radtke | Zentrifugal-Windkraftanlage mit Rotationsunterstützung zur optimierten Nutzung der Windenergie |
WO2010131891A2 (ko) * | 2009-05-11 | 2010-11-18 | Lee Myung Ho | 수직형 풍력 발전기 |
US9228564B2 (en) * | 2010-02-25 | 2016-01-05 | The Regents Of The University Of California | Integrated wind turbine |
EP2514963A1 (de) * | 2011-04-20 | 2012-10-24 | Wilhelmus Helena Hendrikus Joosten | Windturbine, deren Verwendung und Schaufel zur Verwendung in der Turbine |
US8779620B1 (en) * | 2013-07-31 | 2014-07-15 | Joseph Mele | Rotary windmill power generator |
-
2014
- 2014-08-28 FR FR1458063A patent/FR3025259B1/fr not_active Expired - Fee Related
-
2015
- 2015-08-28 WO PCT/EP2015/069784 patent/WO2016030523A1/fr active Application Filing
- 2015-08-28 EP EP15757241.3A patent/EP3186504B1/de not_active Not-in-force
Also Published As
Publication number | Publication date |
---|---|
FR3025259A1 (fr) | 2016-03-04 |
FR3025259B1 (fr) | 2019-07-05 |
EP3186504B1 (de) | 2018-12-12 |
WO2016030523A1 (fr) | 2016-03-03 |
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